• Biomolecule Structure, Naming, And Function
    Nov 7 2024

    In this episode, we’ll learn the intricate world of biomolecule structure, naming, and function. We'll explore the structural nuances between glucose and fructose and unravel the complexities of glycosidic linkages in sucrose. We'll also examine the vital roles of fatty acids, the composition of triglycerides and phospholipids, and their impact on cell membrane architecture and fluidity. Plus, we discuss cholesterol's bidirectional regulation of membrane stability and the contrasting roles of LDL and HDL in cardiovascular health.

    We’ll dive into the essential structures and functions of steroids and nucleotides, as well as the fundamentals of DNA and RNA structure and the importance of ATP. We'll also look at the unique properties of sphingolipids, glycerophospholipids, and signaling molecules like eicosanoids.

    So, tune in as we break down these critical biomolecules that form the foundation of life and are essential knowledge for the MCAT exam.

    Visit MedSchoolCoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro

    (01:03) Overview of Biomolecule Structure and Importance

    (02:37) Steroid Structure and Function

    (06:36) Nucleotide Structure and Function

    (12:02) DNA Structure and Bonding

    (16:30) Carbohydrate Structure

    (19:53) Disaccharides and Polysaccharides

    (24:47) Fatty Acids and Phospholipids

    (28:57) Cholesterol and Its Role in Membrane Fluidity

    (31:27) Sphingolipids and Their Functions

    (33:02) Eicosanoids: Signaling Molecules

    (38:12) Heme Groups and Their Functions

    (41:12) Molecule Entry into Cells

    (44:12) MCAT Advice of the Day

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    46 mins
  • Metabolism: Gluconeogenesis, Pentose Phosphate Pathway, and More
    Nov 5 2024

    In this episode, we're diving deep into the nuanced aspects of metabolism that are essential yet less prominently featured on the MCAT. We'll cover gluconeogenesis, the pentose phosphate pathway, and ketone body generation—topics that, while subtle, play a crucial role in your comprehensive understanding of biochemistry.

    We'll explore how your body manages glucose levels, the functions of NADPH, how glycogen is synthesized and broken down, and the metabolic adaptations during periods of low glucose.

    Visit MedSchoolCoach.com for more help with the MCAT.

    Jump into the conversation:
    (00:00) Intro
    (01:54) Pentose phosphate pathway overview
    (02:42) Functions of NADPH in the body
    (03:35) Difference between NADPH and NADH
    (04:34) Key points to know about the pentose phosphate pathway
    (07:01) Insulin and glucagon: hormonal regulation of blood glucose
    (09:00) Effects of insulin & glucagon on the body
    (10:48) Glycogen synthesis & breakdown
    (15:51) Glycogen debranching enzyme and breakdown of branched chains
    (18:49) Bypassing irreversible steps in glycolysis during gluconeogenesis
    (21:19) Regulation of gluconeogenesis
    (22:25) Ketogenic amino acids and their role in ketone body formation
    (24:04) MCAT advice of the day: reading journal articles

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    26 mins
  • Metabolism: Glycolysis, Krebs Cycle, Electron Transport Chain
    Oct 31 2024

    In this episode, Sam Smith covers the intricacies of metabolism, focusing on glycolysis, the Krebs cycle, and the electron transport chain.

    First, the podcast explores the process of glycolysis, breaking down the key enzymes, intermediates, and regulation points. Next is the citric acid cycle, examining its regulation, energy production, and the roles of specific enzymes and intermediates. Lastly, we look at the electron transport chain and discuss how electrons are transferred through the five complexes, creating a proton gradient that drives ATP synthase to produce ATP.

    Visit MedSchoolCoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro

    (03:15) Ten steps of glycolysis: Intermediate names and enzymes

    (08:01) Simplified glycolysis process: Breaking down key steps

    (12:30) Glycolysis regulation: Allosteric regulation of enzymes

    (21:13) Mnemonics for Krebs cycle intermediates

    (25:52) Regulation of the Krebs cycle: ATP, calcium, and more

    (30:26) Electron transport chain: Overview and key steps

    (34:35) ATP synthase

    (33:00) Reduction potentials in the electron transport chain

    (37:31) Synopsis of metabolism

    (40:34) MCAT Advice of the Day

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    43 mins
  • Acids and Bases
    Oct 29 2024

    Acids and bases are foundational topics in chemistry, crucial for understanding various biological and chemical systems you'll encounter in the MCAT.

    In this episode, host Sam Smith discusses the selection and use of indicators in titrations to the pH at the equivalence point and the importance of buffers in maintaining physiological pH levels. You'll learn about the Henderson-Hasselbalch equation, the blood buffer system, and how to tackle common problems involving acids and bases. Plus, we'll break down strong and weak acids and the significance of their dissociation constants. This episode also shares tips on calculating pH, using ICE tables for weak acid problems, and converting between pH, pOH, and ion concentrations.

    Visit MedSchoolCoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro
    (02:16) Basic definitions of acids and bases
    (11:33) Calculating pH
    (24:55) Titrations
    (35:26) Buffers
    (41:16) Blood buffer system
    (45:25) MCAT advice of the day

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    47 mins
  • The Nervous System
    Oct 24 2024

    A foundational topic for the MCAT is the nervous system, appearing in several exam sections and impacting everything from neurotransmission to brain structure.

    In this episode, Sam Smith walks us through the nervous system, covering its major components and functions. From the organization of the central and peripheral nervous systems to neurotransmitters and brain structures, Sam provides clear explanations to help you understand key topics like the autonomic nervous system's fight-or-flight response, brain imaging techniques, and more.

    Visit medschoolcoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro

    (01:03) How the central and peripheral nervous systems are organized

    (02:33) Autonomic and somatic systems

    (03:22) Sympathetic and parasympathetic branches

    (04:12) How the brain is structured: forebrain, midbrain, and hindbrain

    (11:44) How brain imaging techniques (CT, MRI, EEG, fMRI, PET) are used

    (14:06) How neurons are structured and how they transmit signals

    (16:00) How action potentials work and how ion channels play a role

    (20:30) How myelin sheaths speed up signals

    (25:00) How language processing happens in Broca's and Wernicke's areas

    (28:00) Neurological disorders

    (43:45) The structures of the limbic system

    (47:25) The structures of the brain related to addiction

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    54 mins
  • Amino Acids
    Oct 22 2024

    Amino acids are the building blocks of life and an essential topic for the MCAT.

    In this episode, host Sam Smith takes us through the key concepts of amino acids, including their structures, naming conventions, and roles in protein formation. We’ll cover the differences between hydrophobic and hydrophilic amino acids, how to memorize single-letter abbreviations, and the importance of charged amino acids in physiological conditions. Additionally, Sam touches on mutations and how they can affect protein folding and enzyme function.

    Visit medschoolcoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro

    (01:47) Amino acids naming conventions and abbreviations

    (04:49) Hydrophobic vs. hydrophilic amino acids

    (05:39) Charged and uncharged amino acids

    (10:14) Explanation of mutation notation

    (11:53) Mutations affecting the substrate pocket of enzymes

    (13:15) Mutations impacting enzyme functionality

    (15:58) Role of amino acids in protein tertiary structure

    (17:15) Salt bridges and protein stability

    (20:47) Quiz

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    23 mins
  • Gluconeogenesis
    Oct 17 2024

    One of the body's key survival mechanisms is gluconeogenesis, a vital metabolic process, and the body's clever way of making glucose when supplies are low.

    On this episode of the MCAT Basics podcast, guest host Alex Starks walks through the process of gluconeogenesis. He explains how the body generates glucose when levels drop. Highlighting the liver's role, Alex explains how amino acids, lactate, and glycerol are converted into glucose. The episode also touches on the energy demands of the process and why muscle cells aren't involved in gluconeogenesis.

    Visit medschoolcoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro

    (02:15) Overview of glucose metabolism and glycogen storage

    (03:37) The liver’s role in maintaining blood glucose levels

    (05:11) Glucogenic amino acids and their role in glucose production

    (06:06) Conversion of alanine and glutamine to pyruvate

    (06:53) Lactate and the Cori cycle

    (07:34) Glycerol from triglycerides entering gluconeogenesis

    (08:27) The first bypass reaction: Pyruvate to oxaloacetate

    (09:55) The role of mitochondria and the malate-aspartate shuttle

    (11:00) Phosphoenolpyruvate formation and energy requirements

    (12:16) Steps of gluconeogenesis and ATP consumption

    (13:38) The second bypass reaction: Fructose 1,6-bisphosphate to fructose 6-phosphate

    (14:16) The third bypass reaction: Glucose 6-phosphate to glucose

    (15:31) Gluconeogenesis regulation and the role of glucagon

    (17:10) Quiz

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    23 mins
  • Electron Transport Chain
    Oct 15 2024

    The electron transport chain is a fundamental pathway in biochemistry, critical for understanding the energy production that powers cellular function.

    In this episode, guest host Alex Starks breaks down the intricate process of the electron transport chain (ETC). Building on previous discussions of glucose metabolism, Alex walks through the components that play key roles in the movement of electrons through complexes within the inner mitochondrial membrane. We also cover the functions of coenzyme Q and cytochrome c, as well as oxygen’s critical role in completing the process.


    Visit medschoolcoach.com for more help with the MCAT.

    Jump into the conversation:

    (00:00) Intro

    (02:11) Recap of glycolysis, pyruvate, and the Krebs cycle

    (03:02) Location of the TCA cycle and ETC in the mitochondria

    (04:22) Overview of NADH and FADH2 production

    (05:38) Complex I: NADH dehydrogenase and coenzyme Q

    (08:00) Complex II: Succinate dehydrogenase and FADH2

    (11:15) Complex III: Cytochrome c reductase and the role of proton pumping

    (14:32) Complex IV: Cytochrome c oxidase and oxygen

    (18:14) The role of ATP synthase

    (21:47) Total ATP yield from aerobic respiration

    (26:00) How the electron chain is disrupted

    (30:20) Uncouplers and their metabolic effects

    (35:16) Quiz

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    38 mins